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Borgnakke and Sonntag
15.26
Liquid propane is burned with dry air. A volumetric analysis of the products of combustion yields the following volume percent composition on a dry basis: 8.6% CO2, 0.6% CO, 7.2% O2 and 83.6% N2. Determine the percent of theoretical air used in this combustion process.
a C3H8 + b O2 + c N2 → 8.6 CO2 + 0.6 CO + d H2O + 7.2 O2 + 83.6 N2
C balance: 3a = 8.6 + 0.6 = 9.2 ⇒ a = 3.067 H2 balance: 4a = d ⇒ d = 12.267
N2 balance: c = 83.6
O2 balance: b = 8.6 + 0.62 +
12.2672 + 7.2 = 22.234
Air-Fuel ratio = 22.234 + 83.6
3.067 = 34.51
Theoretical: C3H8 + 5 O2 + 18.8 N2 → 3 CO2 + 4 H2O + 18.8 N2
⇒ theo. A-F ratio = 5 + 18.8
1 = 23.8
% theoretical air = 34.5123.8 × 100 % = 145 %
Excerpts from this work may be reproduced by instructors for distribution on a not-for-profit basis for testing or instructional purposes only to students enrolled in courses for which this textbook has been adopted. Any other reproduction or translation of this work beyond that permitted by Sections 107 or 108 of the 1976 United States Copyright Act without the permission of the copyright owner is unlawful.
Borgnakke and Sonntag
15.31 Butane is burned with dry air at 40oC, 100 kPa with AF = 26 on a mass basis. For
complete combustion find the equivalence ratio, % theoretical air and the dew point of the products. How much water (kg/kg fuel) is condensed out, if any, when the products are cooled down to ambient temperature?
Solution: C4H10 + νO2
{O2 + 3.76 N2} → 4 CO2 + 5 H2O + 3.76 νO2N2
Stoichiometric νO2 S = 4 + 5/2 = 6.5; 3.76 νO2
= 24.44
(A/F)S = 6.5(31.999 + 3.76 × 28.013)/58.124 = 15.3574
Actual: νO2ac = (A/F)ac(A/F)s
νO2 S =
2615.3574 6.5 = 11
% Theoretical air = 26
15.3574 100 = 169.3%
Equivalence ratio Φ = 1/1.693 = 0.59 Actual products: 4 CO2 + 5 H2O + 4.5 O2 + 41.36 N2
The water partial pressure becomes
Pv = yv Ptot = 5
4 + 5 + 4.5 + 41.36 100 = 9.114 kPa
Tdew = 43.85oC
Pg 40 = 7.348 kPa ⇒ yv max = 7.384100 =
νH2O4 + νH2O + 4.5 + 41.36
Solve for νH2O vap:
νH2O vap = 3.975 still vapor,
νH2O LIQ = 5 – 3.975 = 1.025 is liquid
mH2O LIQ
mFuel =
1.025 × 18.01558.124 = 0.318
Excerpts from this work may be reproduced by instructors for distribution on a not-for-profit basis for testing or instructional purposes only to students enrolled in courses for which this textbook has been adopted. Any other reproduction or translation of this work beyond that permitted by Sections 107 or 108 of the 1976 United States Copyright Act without the permission of the copyright owner is unlawful.
Borgnakke and Sonntag
15.69 Natural gas, we assume methane, is burned with 200% theoretical air and the
reactants are supplied as gases at the reference temperature and pressure. The products are flowing through a heat exchanger where they give off energy to some water flowing in at 20oC, 500 kPa and out at 700oC, 500 kPa. The products exit at 400 K to the chimney. How much energy per kmole fuel can the products deliver and how many kg water per kg fuel can they heat?
The reaction equation for stoichiometric mixture is:
CH4 + νO2 (O2 + 3.76 N2) → 2 H2O + 1 CO2 + c N2
O balance: 2 νO2 = 2 + 2 => νO2 = 2
200% theoretical air: νO2 = 2 × 2 = 4 so now more O2 and N2
CH4 + 4 (O2 + 3.76 N2) → 2 H2O + 1 CO2 + 15.04 N2 + 2 O2
The products are cooled to 400 K (so we do not consider condensation) and the energy equation is
Energy Eq.: HR + Q = HP = H°P + ∆HP = H°
R + Q
Q = H°P - H°
R + ∆HP = H°RP + ∆HP
From Table 15.3: H°RP = 16.04 (-50 010) = -802 160 kJ/kmol
∆HP = ∆h-*CO2 + 2 ∆h-*
H2O + 2 ∆h-*O2 + 15.04 ∆h-*
N2
From Table A.9 ∆HP 400 = 4003 + 2 × 3450 + 2 × 3027 + 15.04 × 2971 = 61 641 kJ/kmol
Q = H°RP + ∆HP = -802 160 + 61 641 = -740 519 kJ/kmol
qprod = -Q / M = 740 519 / 16.04 = 46 167 kJ/kg fuel
The water flow has a required heat transfer, using B.1.3 and B.1.4 as qH2O = hout – hin = 3925.97 – 83.81 = 3842.2 kJ/kg water
The mass of water becomes mH2O / mfuel = qprod / qH2O = 12.0 kg water / kg fuel
Excerpts from this work may be reproduced by instructors for distribution on a not-for-profit basis for testing or instructional purposes only to students enrolled in courses for which this textbook has been adopted. Any other reproduction or translation of this work beyond that permitted by Sections 107 or 108 of the 1976 United States Copyright Act without the permission of the copyright owner is unlawful.
Borgnakke and Sonntag
15.71 Gasoline, C7H17, is burned in a steady state burner with stoichiometric air at Po,
To. The gasoline is flowing as a liquid at To to a carburetor where it is mixed with air to produce a fuel air gas mixture at To. The carburetor takes some heat transfer from the hot products to do the heating. After the combustion the products go through a heat exchanger, which they leave at 600 K. The gasoline consumption is 10 kg per hour. How much power is given out in the heat exchanger and how much power does the carburetor need? Stoichiometric combustion:
C7H17 + νO2 (O2 + 3.76 N2) → 8.5 H2O + 7 CO2 + c N2
O balance: 2 νO2 = 8.5 + 14 = 22.5 ⇒ νO2
= 11.25
N balance: c = 3.76 νO2 = 3.76 × 11.25 = 42.3
MFUEL = 7 MC + 17 MH = 7 × 12.011 + 8.5 × 2.016 = 101.213
C.V. Total, heat exchanger and carburetor included, Q out.
Energy Eq.: HR = H°R = H°
P + ∆HP + Qout
From Table A.9 ∆HP = 8.5 × 10 499 + 7 × 12 906 + 42.3 × 8894 = 555 800 kJ/kmol From energy equation and Table 15.3
Qout = H°R - H°
P - ∆HP = -H°RP - ∆HP
= 101.213 (44 506) – 555 800 = 3 948 786 kJ/kmol Now the power output is
Q. = n. Qout = Qout m
. /M = 3 948 786 × 10
3600 / 101.213 = 108.4 kW
The carburetor air comes in and leaves at the same T so no change in energy, all we need is to evaporate the fuel, hfg so
Q. = m. hfg =
103600 (44 886 – 44 506) =
1360 × 380 = 1.06 kW
Here we used Table 15.3 for fuel liquid and fuel vapor to get hfg and any phase of the water as long as it is the same for the two.
Excerpts from this work may be reproduced by instructors for distribution on a not-for-profit basis for testing or instructional purposes only to students enrolled in courses for which this textbook has been adopted. Any other reproduction or translation of this work beyond that permitted by Sections 107 or 108 of the 1976 United States Copyright Act without the permission of the copyright owner is unlawful.
Borgnakke and Sonntag
15.79 A gas turbine burns methane with 200% theoretical air. The air and fuel comes in
through two separate compressors bringing them from 100 kPa, 298 K to 1400 kPa and after mixing enters the combustion chamber at 600 K. Find the adiabatic flame temperature using constant specific heat for the ∆HP terms.
The reaction equation for stoichiometric mixture is:
CH4 + νO2 (O2 + 3.76 N2) → 2 H2O + 1 CO2 + c N2
O balance: 2 νO2 = 2 + 2 => νO2 = 2
200% theoretical air: νO2 = 2 × 2 = 4 so now more O2 and N2
CH4 + 4 (O2 + 3.76 N2) → 2 H2O + 1 CO2 + 15.04 N2 + 2 O2 The energy equation around the combustion chamber becomes
Energy Eq.: HP - HR = 0 => ∆HP = H°R + ∆HR - H°
P = -H°RP + ∆HR
∆HR = ∆HFuel + ∆Hair = M CP ∆T + 4(∆h-O2 + 3.76 ∆h-N2)
= 16.043 × 2.254 (600–298) + 4(9245 + 3.76 × 8894) = 181 666 kJ/kmol
-H°RP = 16.043 × 50 010 = 802 310 kJ/kmol
∆HP = ∆h-CO2 + 2 ∆h-H2O + 15.04 ∆h-N2 + 2 ∆h-O2 ≈ ∆Τ ∑νiC-
Pi
= 802 310 + 181 666 = 983 976 kJ/kmol (from energy Eq.)
∑νiC-
Pi = 0.842 × 44.01 + 2 × 1.872 × 18.015 + 15.04 × 1.042 × 28.013
+ 2 × 0.922 × 31.999 = 602.52 kJ/kmol-K
∆Τ = ∆HP / ∑νiC-
Pi = 983 976 / 602.52 = 1633.1 K
T = 298 + 1633 = 1931 K
Excerpts from this work may be reproduced by instructors for distribution on a not-for-profit basis for testing or instructional purposes only to students enrolled in courses for which this textbook has been adopted. Any other reproduction or translation of this work beyond that permitted by Sections 107 or 108 of the 1976 United States Copyright Act without the permission of the copyright owner is unlawful.
Borgnakke and Sonntag
15.80 Extend the solution to the previous problem by using Table A.9 for the ∆HP
terms. The reaction equation for stoichiometric mixture is:
CH4 + νO2 (O2 + 3.76 N2) → 2 H2O + 1 CO2 + c N2
O balance: 2 νO2 = 2 + 2 => νO2 = 2
200% theoretical air: νO2 = 2 × 2 = 4 so now more O2 and N2
CH4 + 4 (O2 + 3.76 N2) → 2 H2O + 1 CO2 + 15.04 N2 + 2 O2 The energy equation around the combustion chamber becomes
Energy Eq.: HP - HR = 0 => ∆HP = H°R + ∆HR - H°
P = -H°RP + ∆HR
∆HR = ∆HFuel + ∆Hair = M CP ∆T + 4(∆h-O2 + 3.76 ∆h-N2)
= 16.043 × 2.254 (600–298) + 4(9245 + 3.76 × 8894) = 181 666 kJ/kmol
-H°RP = 16.043 × 50 010 = 802 310 kJ/kmol
∆HP = ∆h-CO2 + 2 ∆h-H2O + 15.04 ∆h-N2 + 2 ∆h-O2
= 802 310 + 181 666 = 983 976 kJ/kmol (from energy Eq.)
Trial and error with ∆h- from Table A.9
At 1800 K ∆HP = 79 432 + 2 ×62 693 + 15.04 ×48 979 + 2 ×51 674 = 1 044 810 kJ/kmol At 1700 K ∆HP = 73 480 + 2 ×57 757 + 15.04 ×45 430 + 2 ×47 959 = 968 179 kJ/kmol
Linear interpolation: T = 1700 + 100 983 976 - 968 1791 044 810 - 968 179 = 1721 K
Excerpts from this work may be reproduced by instructors for distribution on a not-for-profit basis for testing or instructional purposes only to students enrolled in courses for which this textbook has been adopted. Any other reproduction or translation of this work beyond that permitted by Sections 107 or 108 of the 1976 United States Copyright Act without the permission of the copyright owner is unlawful.
Borgnakke and Sonntag
15.83 Acetylene gas at 25°C, 100 kPa is fed to the head of a cutting torch. Calculate the
adiabatic flame temperature if the acetylene is burned with a. 100% theoretical air at 25°C. b. 100% theoretical oxygen at 25°C.
a) C2H2 + 2.5 O2 + 2.5 × 3.76 N2 → 2 CO2 + 1 H2O + 9.4 N2
HR = h-of C2H2 = +226 731 kJ/kmol from table A.10
HP = 2(-393 522 + ∆h-*CO2) + 1(-241 826 + ∆h-*
H2O) + 9.4 ∆h-*N2
QCV = HP - HR = 0 ⇒ 2 ∆h-*CO2 + 1 ∆h-*
H2O + 9.4 ∆h-*N2 = 1 255 601 kJ
Trial and Error A.9: LHS2800 = 1 198 369, LHS3000 = 1 303 775 Linear interpolation: TPROD = 2909 K
b) C2H2 + 2.5 O2 → 2 CO2 + H2O
HR = +226 731 kJ ; HP = 2(-393 522 + ∆h-*CO2) + 1(-241 826 + ∆h-*
H2O)
⇒ 2 ∆h-*CO2 + 1 ∆h-*
H2O = 1 255 601 kJ/kmol fuel
At 6000 K (limit of A.9) 2 × 343 782 + 302 295 = 989 859 At 5600 K 2 × 317 870 + 278 161 = 913 901 Slope 75 958/400 K change Extrapolate to cover the difference above 989 859 kJ/kmol fuel TPROD ≈ 6000 + 400(265 742/75 958) ≈ 7400 K
Excerpts from this work may be reproduced by instructors for distribution on a not-for-profit basis for testing or instructional purposes only to students enrolled in courses for which this textbook has been adopted. Any other reproduction or translation of this work beyond that permitted by Sections 107 or 108 of the 1976 United States Copyright Act without the permission of the copyright owner is unlawful.
Borgnakke and Sonntag
15.92 Consider the combustion of methanol, CH3OH, with 25% excess air. The
combustion products are passed through a heat exchanger and exit at 200 kPa, 400 K. Calculate the absolute entropy of the products exiting the heat exchanger assuming all the water is vapor.
CH3OH + 1.25 × 1.5 (O2 + 3.76 N2) → CO2 + 2 H2O + 0.375 O2 + 7.05 N2 We need to find the mole fractions to do the partial pressures,
n = 1 + 2 + 0.375 + 7.05 = 10.425 => yi = ni / n
Gas mixture: ni yi s-°
i -R- ln yiPP0
S- i
CO2 1.0 0.0959 225.314 +13.730 239.044 H2O 2 0.1918 198.787 +7.967 206.754 O2 0.375 0.0360 213.873 +20.876 234.749 N2 7.05 0.6763 200.181 -2.511 197.670
SGAS MIX = ∑ niS-
i = 2134.5 kJ/K kmol fuel
Excerpts from this work may be reproduced by instructors for distribution on a not-for-profit basis for testing or instructional purposes only to students enrolled in courses for which this textbook has been adopted. Any other reproduction or translation of this work beyond that permitted by Sections 107 or 108 of the 1976 United States Copyright Act without the permission of the copyright owner is unlawful.
Borgnakke and Sonntag
15.94 Propene, C3H6, is burned with air in a steady flow burner with reactants at Po, To.
The mixture is lean so the adiabatic flame temperature is 1800 K. Find the entropy generation per kmol fuel neglecting all the partial pressure corrections.
The reaction equation for a mixture with excess air is:
C3H6 + νO2 (O2 + 3.76 N2) → 3 H2O + 3 CO2 + 3.76νO2 N2 + (νO2 – 4.5)O2
Energy Eq.: HR = H°R + ∆HR = H°
R = HP = H°P + ∆HP
The entropy equation: SR + Sgen = SP => Sgen = SP – SR = SP – S°R
From table A.9 at reference T ∆HR = ∆hFu + νO2(∆hO2 + 3.76 ∆hN2) = 0
From table A.9 at 1800 K: ∆HP = 3 ∆hH2O + 3 ∆hCO2 + 3.76 νO2 ∆hN2 + (νO2 – 4.5) ∆hO2
= 3 × 62 693 + 3 × 79432 + 3.76 νO2 × 48 979 + (νO2 – 4.5) 51 674
= 193 842 + 235 835 νO2
From table 15.3: H°P - H°
R = H°RP = 42.081(–45 780) = –1 926 468 kJ/kmol
Now substitute all terms into the energy equation –1 926 468 + 193 842 + 235 835 νO2 = 0
Solve for νO2: νO2 = 1 926 468 – 193 842
235 835 = 7.3468, νN2 = 27.624
Table A.9-10 contains the entropies at 100 kPa so we get: SP = 3 × 259.452 + 3 × 302.969 + (7.3468 – 4.5) 264.797 + 27.624 × 248.304
= 9300.24 kJ/kmol-K SR = 267.066 + 7.3468 × 205.148 + 27.624 × 191.609 = 7067.25 kJ/kmol K
Sgen = 9300.24 – 7067.25 = 2233 kJ/kmol-K
Excerpts from this work may be reproduced by instructors for distribution on a not-for-profit basis for testing or instructional purposes only to students enrolled in courses for which this textbook has been adopted. Any other reproduction or translation of this work beyond that permitted by Sections 107 or 108 of the 1976 United States Copyright Act without the permission of the copyright owner is unlawful.